Canonical binding of Chaetomium thermophilum DNA polymerase δ/ζ subunit PolD3 and flap endonuclease Fen1 to PCNA

The sliding clamp PCNA is a key player in eukaryotic genome replication and stability, acting as a platform onto which components of the DNA replication and repair machinery are assembled. Interactions with PCNA are frequently mediated via a short protein sequence motif known as the PCNA-interacting protein (PIP) motif. Here we describe the binding mode of a PIP motif peptide derived from C-terminus of the PolD3 protein from the thermophilic ascomycete fungus C. thermophilum, a subunit of both DNA polymerase δ (Pol δ) and the translesion DNA synthesis polymerase Pol ζ, characterised by isothermal titration calorimetry (ITC) and protein X-ray crystallography. In sharp contrast to the previously determined structure of a Chaetomium thermophilum PolD4 peptide bound to PCNA, binding of the PolD3 peptide is strictly canonical, with the peptide adopting the anticipated 310 helix structure, conserved Gln441 inserting into the so-called Q-pocket on PCNA, and Ile444 and Phe448 forming a two-fork plug that inserts into the hydrophobic surface pocket on PCNA. The binding affinity for the canonical PolD3 PIP-PCNA interaction determined by ITC is broadly similar to that previously determined for the non-canonical PolD4 PIP-PCNA interaction. In addition, we report the structure of a PIP peptide derived from the C. thermophilum Fen1 nuclease bound to PCNA. Like PolD3, Fen1 PIP peptide binding to PCNA is achieved by strictly canonical means. Taken together, these results add to an increasing body of information on how different proteins bind to PCNA, both within and across species.


Introduction
Highly efficient chromosomal DNA replication is essential for all forms of cellular life and requires the complex interplay of a wide range of protein factors in a temporally and spatially coordinated manner.The importance of high-fidelity chromosome replication is underlined by the fact that in humans, replication defects can lead to genetic disease (Weedon et al., 2013;Pelosini et al., 2014;Cui et al., 2020) and cancer (Church et al., 2013;Palles et al., 2013;Valle et al., 2014;Bellido et al., 2016;Rayner et al., 2016).
The sliding clamp PCNA (proliferating cell nuclear antigen) is a central player in multiple aspects of chromosomal DNA replication, repair and genome stability (Moldovan et al., 2007;Boehm et al., 2016).This ring-shaped homotrimer encircles double-stranded DNA to act as a processivity factor for DNA polymerases and a landing pad for the assembly of various DNA processing factors such DNA ligase I, the flap endonuclease Fen1, and the clamp loader complex replication factor C (RF-C) which opens and closes the PCNA ring around dsDNA.Many of the proteins that interact with PCNA, including DNA polymerase δ, DNA ligase I, Fen1 and RF-C, do so via a common mechanism that involves a short linear interaction motif on the partner protein called a PCNA-interacting protein (PIP) motif (Warbrick, 1998;Hamdan and De Biasio, 2023).The best characterised PIP motifs have conserved sequence Qxxψxxθθ, where ψ and θ represent amino acids with hydrophobic and aromatic side chains, respectively, but other variations on this sequence (so-called non-canonical PIP motifs) have been identified (Boehm and Washington, 2016;Prestel et al., 2019) such as ψxxxθ (Gonzalez-Magana et al., 2019) and Qxxψxθ (Yang et al., 2023).
Three of the four human Pol δ subunits contain PIP motifs that have been shown to bind PCNA: p125 (PolD1), p66 (PolD3) and p12 (PolD4).In the case of p66, the PIP motif is located at the extreme C-terminus of the protein at the end of lengthy region that is predicted to be largely unstructured and highly flexible (Reynolds et al., 2000;Johansson et al., 2004).Similarly, the PolD4 PIP motif is located at the end of an unstructured, flexible region close to the N-terminal end of the protein (Gonzalez-Magana et al., 2019;Yang et al., 2023).In the cryo-EM structure of human Pol δ bound to PCNA and DNA, only the catalytic subunit p125 (PolD1) PIP motif is seen interacting with PCNA (Lancey et al., 2020), suggesting that the PolD3 and PolD4 PIP motifs do not bind PCNA stably under these conditions.Similarly, in the cryo-EM structure of yeast Pol δ bound to PCNA and DNA, only the PolD1 orthologue Pol3 PIP motif binds to PCNA (Zheng et al., 2020).
Understanding how these various PIP motifs contribute to overall Pol δ function requires a combination of functional and structural analysis.In an effort to gain mechanistic insights into Pol δ function, we have developed tools for high-level expression and rapid purification of the four-subunit Pol δ complex encoded by the thermophilic ascomycete fungus Chaetomium thermophilum (Ct, also known as Thermochaetoides thermophila) (D.Yang and S. MacNeill, unpublished).In parallel with this, we have embarked on a study of how Ct Pol δ interacts with Ct PCNA and have previously described the non-canonical binding of the N-terminal PIP motif from the Ct PolD4 protein to Ct PCNA (Yang et al., 2023).Here, we report characterisation of the interaction between the Ct PolD3 PIP motif and its cognate PCNA by protein X-ray crystallography at a resolution of 2.45 Å.Unlike the Ct PolD4-Ct PCNA interaction, Ct PolD3 binding to Ct PCNA is in every respect canonical: Gln441 inserts into the Q-pocket, a 3 10 helix is formed and Ile444 and Phe448 form the two-fork plug.Interestingly, despite this canonical binding mode, the affinity of the PIP motif peptide for Ct PCNA, determined by isothermal titration calorimetry (ITC), is approximately two-fold lower than that seen with the non-canonical binding of the Ct PolD4 PIP to Ct PCNA (43 µM versus 22 µM).In addition to this, we present the X-ray crystal structure of the Ct Fen1 nuclease PIP peptide bound to Ct PCNA at 1.95Å.This too displays canonical binding to Ct PCNA, with the 3 10 helixcontaining peptide engaging in Q-pocket and two-fork plug interactions.We discuss these results in terms of the conservation and divergence of PIP motif sequences both within and across species.

Identification of Ct PolD3 and Ct Fen1 proteins
Sequences encoding Ct PolD3 and Ct Fen1 were identified by BLASTP searching the nr database with the ascomycete Schizosaccharomyces pombe Cdc27 (PolD3) and Rad2 (Fen1) protein sequences as the queries (UniProt accession numbers P30261 and P39750, respectively).As protein sequence comparisons suggested that the Ct PolD3 protein sequence predicted in the database was N-terminally truncated, full-length cDNAs encoding PolD3 were subsequently amplified from C. thermophilum DSM 1495 cDNA (a generous gift of E. Hurt, University of Heidelberg) and sequenced, allowing identification of the complete ORF.The full-length cDNA sequence has been deposited with the GenBank database (accession number OQ605904) and the full-length protein sequence with UniProt (accession number G0S636).The Ct Fen1 protein has accession number G0S2B5 in the UniProt database.Protein sequence alignments for PolD3 and Fen1 can be seen as Supplementary Figures S1, S2, respectively.

Protein expression and purification
Ct PCNA was expressed and purified to apparent homogeneity as described previously (Yang et al., 2023).Briefly, the protein was expressed in recombinant form in E. coli with a TEV proteasecleavable N-terminal His6 tag, purified using IMAC, cleaved with His6-TEV to remove the His6 tag, subjected to reverse IMAC to remove still-tagged PCNA protein and His6-TEV protease, then polished using SEC.Purified protein (11.0 mg/mL) was flash-frozen in liquid nitrogen and stored at −80 °C.

Crystallography
For crystal screens, 90 µL of 14 mg/mL Ct PCNA was mixed with 21 µL of either 8 mg/mL Ct PolD3 PIP peptide (in dH 2 O) or 8 mg/mL Ct Fen1 PIP peptide (in DMSO) and screened using JCSG Plus ™ and PACT Premier ™ screens (Molecular Dimensions, Holland, OH, United States).Diffraction quality crystals were obtained from the JCSG Plus ™ screen in 0.1 M phosphate/citrate pH 4.2, 40% PEG 300 (for Ct PolD3 peptide-Ct PCNA) and 2.4 M sodium malonate dibasic monohydrate pH 7.0 (for Ct Fen1 peptide-Ct PCNA).The crystals diffracted to 2.45 and 1.95 A, respectively.The data for both complexes were collected in-house at 100 K on a Rigaku MM007HF Cu anode X-ray generator (Rigaku, Tokyo, Japan).Reflections were recorded on a Rigaku Saturn 944+ CCD detector.Data processing was performed using iMOSFLM (Battye et al., 2011), scaled using AIMLESS, and the space group of each structure was identified using POINTLESS (Murshudov et al., 2011).Ct PCNA-Ct PolD3 was crystallized in space group P1 with one trimer of Ct PCNA in the asymmetric unit, while Ct PCNA-Ct Fen1 was crystallized in space group H32 with one chain of Ct PCNA in the asymmetric unit.The data collection statistics are found in Supplementary Table S1.The structures of the protein-peptide complexes were solved by molecular replacement using MOLREP (CCP4) (Vagin and Teplyakov, 1997) using the complete structure of Ct PCNA (PDB: 7O1E) as a starting model (Yang et al., 2023).Repeated rounds of model refinement using COOT (Emsley and Cowtan, 2004) and REFMAC5 (Murshudov et al., 2011) resulted in a structural model with an R work of 21.2% and R free of 24.9% for Ct PCNA-PolD3 PIP and R work of 17.1% and R free of 20.4% for Ct PCNA-Fen1 PIP (see Supplementary Table S1).The structures have been deposited in the PDB with accession codes 8P9O (Ct PCNA-Ct PolD3 PIP) and 8Q7I (Ct PCNA-Ct Fen1 PIP).

Isothermal titration calorimetry (ITC)
ITC was performed using a MicroCal PEAQ-ITC calorimeter (Malvern Panalytical, Malvern, UK).Prior to measurement, the Ct PolD3 peptide and Ct PCNA protein were buffer-exchanged into 50 mM Tris-HCl, 150 mM NaCl, pH 8.0.Experimental titrations were performed at 25 °C in duplicate with 300 µL of 32.7 µM Ct PCNA and 420 µM Ct PolD3 peptide.Control titrations used Ct PolD3 peptide only at 420 µM.In total, 19 injections were used for each assay: a primary injection of 0.2 µL followed by 18 injections of 2.0 µL.The heat change following injection was measured, the control values subtracted, and data was fitted to a single site model (1 peptide: 1 PCNA protomer) using MicroCal PEAQ-ITC Analysis Software (v1.21).The K D values reported represent the mean of the two experiments.

Chaetomium thermophilum PolD3 protein
BLASTP searching using the ascomycete fission yeast S. pombe PolD3 orthologue Cdc27 as the query sequence led (after later cDNA sequencing, see Materials and methods for details) to the identification of Ct PolD3 as a 451 amino acid protein with predicted molecular weight 49.3 kDa.Ct PolD3 is 26% identical to S. pombe Cdc27 at the amino acid sequence level and ~20% identical to the human and S. cerevisiae PolD3 orthologues p66 and Pol32, respectively.The conserved PIP motif found at the extreme C-terminus of human, S. cerevisiae and S. pombe PolD3 orthologues is readily identifiable at the C-terminal end of the Ct PolD3 protein (sequence: 441 QGSIMSWF 448 conserved PIP motif residues underlined) (Figure 1, Supplementary Figure S1).

Binding of Ct PolD3 PIP peptide to PCNA
To characterise the binding of the Ct PolD3 with Ct PCNA, the structure of the Ct PolD3 PIP motif peptide-Ct PCNA complex was solved by X-ray crystallography at a resolution of 2.45 Å (Figure 2A, see Supplementary Table S1 for crystallography statistics and Supplementary Figure S3 for Fo−Fc difference density maps).The Ct PolD3 peptide (sequence: 437 GKGGQGSIMSWFAKK 451 with conserved PIP motif residues underlined) occupied a single PIP binding site only, with the other sites on Ct PCNA being occluded by crystal packing (specifically, by the loop that spans residues Thr186-Lys190 in neighbouring symmetry mates).Only 11 of 15 residues in the peptide could be seen in the electron density map (Gln441 to Lys451) suggesting that the N-terminal four residues of the peptide are flexible (Figure 2B).

Binding affinity determined by isothermal titration calorimetry
In order to gauge the affinity of the Ct PolD3 PIP peptide for Ct PCNA, isothermal titration calorimetry (ITC) was used to determine the binding affinity of Ct PCNA for the 15mer Ct PolD3 PIP motif peptide ( 437 GKGGQGSIMSWFAKK 451 ) and the stoichiometry of the interaction in solution (Figure 2D).The mean dissociation constant (K D ) from two experiments was determined to be 43.2 µM ± 3.9 μM at 25 °C and the stoichiometry 1:1 (i.e. 1 PIP peptide: 1 PCNA protomer) indicating that all three PIP peptide binding sites on Ct PCNA are occupied in solution, as expected.The measured K D is almost three-fold less (43 µM versus 16 µM) than that previously reported for the human PolD3/p66-PCNA interaction determined by ITC with a peptide of sequence 452 KANRQVSITGFFQRK 466 (Bruning and Shamoo, 2004) and two-fold less (43 µM versus 22 µM) than that for Ct PolD4 binding to Ct PCNA despite the latter interaction involving a non-canonical binding mode (Yang et al., 2023).This is discussed further below (see Discussion).

Binding of Ct Fen1 PIP peptide to Ct PCNA
Fen1 is a 5' flap-specific nuclease that plays an important in Okazaki fragment maturation.BLASTP searching with the S. pombe Fen1 nuclease orthologue Rad2 identifies C. thermophilum Fen1 as a 395 amino acid protein that is 60% identical to the S. pombe and S. cerevisiae Fen1 orthologues Rad27 and Rad2, respectively, at the amino acid sequence level and 55% identical to human Fen1.Key catalytic residues in human Fen1 are conserved in the C. thermophilum enzyme, as is the PIP motif located towards the C-terminal end of the protein (sequence: 342 QARIEGFF 349 with conserved PIP motif residues underlined) (Figure 1).
The Ct Fen1 PIP peptide-Ct PCNA structure was solved to a resolution of 1.95 Å (Figure 3A, see also Supplementary Table S1, Supplementary Figure S3).14 of 15 residues in the Ct Fen1 PIP peptide were visible in the structure, revealing a 3 10 helix and the anticipated canonical binding mode, with Ct Fen1 Gln342 inserting into the Q-pocket, and Ile345 and Phe349 forming the two-fork plug that inserts into the hydrophobic surface pocket on Ct PCNA (Figure 3B).As with Ct PolD3, the Ct Fen1 Q-pocket glutamine, Gln342, interacts with Ser208 and Ala252 in Ct PCNA, with the interaction with Ser208 involving water-mediated hydrogen bonding between Gln342 (OE1) and Ser208 (N), as is the case for the equivalent Gln441-Ser208 pairing in Ct PolD3, whereas the interaction with Ala252 involves a direct H-bond between Gln342 (NE2) and Ala252 (O), different from the water-mediated Gln441-Ala252 interaction in the Ct PolD3-Ct PCNA structure.Additional direct hydrogen-bonding interactions are seen involving Gln341 (N) and Ile255 (O), Gln341 (O) and Ile255 (N), Ala343 (N) and Pro253 (O), Ile345 (N) and His44 (O), Glu346 (OE2) and His44 (ND1), Lys350 (O) and Gly127 (N), and Ile353 (N) and His125 (O).In addition to this, the higher resolution of the structure allowed identification of multiple water-mediated hydrogen bonds connecting the Ct Fen1 peptide to Ct PCNA (Figure 3C).A salt bridge links Glu346 (OE1) and His44 (ND1) also.As with the Ct PolD3-Ct PCNA structure, the 2-fork plus residues Ile345 and Phe349 display hydrophobic interactions with the surface pocket on Ct PCNA (Figure 3C) although in the case of Phe349 only a single interaction (involving Phe349 (CE1)) is apparent within the 3.9 Å length cut-off applied in the analysis.

Discussion
Beginning with the structure of p21 Cip1 PIP bound to PCNA (Gulbis et al., 1996), the atomic structures of a large and diverse set of PCNA-PIP peptide complexes have been determined over the last quarter century (Prestel et al., 2019), although only in very few cases have equivalent (orthologous) interactions been studied in multiple species.Here we present atomic structures of PCNA-PIP peptide complexes derived from the Ct PolD3 and Ct Fen1 proteins bound to their cognate PCNA at resolutions of 2.45 and 1.95 Å, respectively.In both cases, the new structures allow comparison with earlier structures of human orthologues: Ct PolD3-Ct PCNA with human PolD3/p66-PCNA and Ct Fen1-Ct PCNA with human Fen1-PCNA (Bruning and Shamoo, 2004) (Figure 4).
In sharp contrast to the non-canonical Ct PolD4-Ct PCNA and human p12-PCNA interactions described previously, the Ct PolD3-Ct PCNA and Ct Fen1-Ct PCNA interactions described here are strictly canonical in nature (Gonzalez-Magana et al., 2019;Yang et al., 2023).Both PIP peptides form a 3 10 helix, conserved glutamines (Gln441 and Gln342 in Ct PolD3 and Ct Fen1, respectively) insert into the Ct PCNA Q-pocket, and in both cases a 2-fork plug (involving the sidechains of Ile444 and F448 in Ct PolD3, and Leu345 and Phe349 in Ct Fen1) inserts into the hydrophobic pocket on the surface of Ct PCNA. Figure 4 shows a comparison of the binding modes of PolD3, Fen1 and PolD4 PIP peptides across species, highlighting the high level of cross-species similarity between the human and C. thermophilum PolD3-PCNA and Fen1-PCNA structures.This is in contrast to the more divergent PolD4 orthologue PIP-PCNA structures, where the Ct PolD4 PIP peptide does not form the 3 10 helix characteristic of most other PIP peptides (including human PolD4/p12, but also Ct PolD3 and Ct Fen1), nor does the Ct PolD4-Ct PCNA interaction involve a glutamine-Q-pocket interaction (unlike human PolD4/p12, Ct PolD3 and Ct Fen1) (Figure 4) (Yang et al., 2023).Interestingly, the binding affinities of the human and C. thermophilum PolD3 and PolD4 peptides for their cognate PCNAs determined by ITC are broadly similar, with measured K D values ranging from 16 to 43 µM (Bruning and Shamoo, 2004;Gonzalez-Magana et al., 2019;Yang et al., 2023) and the differences that exist show no obvious pattern: in humans, the measured K D for the canonical PolD3/p66-PCNA interaction is lower than that for the non-canonical PolD4-PCNA interaction (16 µM versus 38 µM) while in C. thermophilum the measured K D for canonical PolD3-PCNA is higher than that for non-canonical PolD4-PCNA (43 µM versus 22 µM), suggesting that specific binding affinity for PCNA (within the observed 16-43 µM range) may not be crucial for PolD3 and PolD4 protein function.
Remarkably, the PolD3-PCNA interaction is not seen in recent cryo-EM structures of human or budding yeast Pol δ complexed with PCNA on primer-template DNA (Zheng et al., 2020;Lancey et al., 2021).The human PolD4 PIP-PCNA interaction is also not seen.In both sets of Pol δ-PCNA structures, the only visible PIP motif-PCNA interaction is that between the catalytic subunit of Pol δ (PolD1/human p125/yeast Pol3) and PCNA, with the two remaining PIP peptide binding sites on the PCNA trimer being unoccupied.These sites are not occluded however, as evidenced by Fen1-PCNA interaction in the human Pol δ-PCNA-Fen1 complex (shown in Figure 1) (Lancey et al., 2021).Why these interactions are not seen remains unclear but it is possible that they have only a very limited role, or no role at all, to play once the Pol δ complex has engaged with its substrate at the primertemplate junction.Instead, the PolD3 and PolD4 PIP motifs might facilitate recruitment of Pol δ to PCNA that has previously been loaded at the primer-template junction, before handing over the task of stabilizing Pol δ-PCNA interaction to PolD1 PIP-PCNA binding, or might ensure that should Pol δ disengage from the primer-template, it is retained in the vicinity of the DNA to allow efficient polymerase recycling.The PolD3 and PolD4 PIP motifs are located at the end of lengthy flexible regions that could, in either case, be employed in the "fly casting mechanism" (Shoemaker et al., 2000) to scan threedimensional space and latch onto PCNA prior to the Pol δ-PCNA complex being locked more securely into position via the PolD1 PIP-PCNA interaction seen in the cryo-EM structures (Hamdan and De Biasio, 2023).A similar mechanism has been proposed for DNA ligase I (Lig1)-PCNA interactions: a PIP motif at the N-terminal end of the flexible N-terminal region of Lig1 (PIP N-term ) tethers the protein to PCNA when the ligase is detached from DNA but once the ligase locates a nick, this interaction is disrupted and a second PIP motif (PIP DBD ), located near the centre of the Lig1 DNA binding domain, engages with PCNA instead (Blair et al., 2022).
A key functional distinction between the human PolD3/p66 and PolD4/p12 PIP motifs is that the latter is PIP degron, a specialized PIP motif that acts as a targeting signal for protein degradation (Havens and Walter, 2009;Havens and Walter, 2011;Havens et al., 2012).Once bound to PCNA on chromatin, PIP degron-containing proteins such as PolD4/p12, Cdt1 and p21 Cip1 are ubiquitylated and degraded by a CRL Cdt2 -dependent mechanism.Degradation of human PolD4/ p12 occurs as cells enter S-phase or in response to DNA damage (Zhang et al., 2007;Meng et al., 2009;Terai et al., 2013;Zhang et al., 2013), leaving behind a three-subunit Pol δ complex that appears better suited to the task in hand (Lee et al., 2014;Lee et al., 2019).It remains to be seen whether the Ct PolD4 protein is degraded via a similar mechanism, however, we have shown that the orthologous PolD4/Cdm1 protein from the related ascomycete fission yeast S. pombe is a CRL Cdt2 substrate (S.M., unpublished results) suggesting that Ct PolD4 protein levels may be regulated in this way too.Previously, a basic amino acid four residues C-terminal to the 2fork plug aromatic residue in the conserved PIP motif sequence (i.e., in the +4 position) has been identified as being an important (though not defining) feature of PIP degrons (Havens and Walter, 2009;Havens and Walter, 2011;Havens et al., 2012); filamentous fungal PolD4 proteins such as Ct PolD4 lack this, but do have conserved basic residues at +3 and +6 that could play a similar role (Yang et al., 2023).In S. pombe and other fission yeasts, an arginine is found conserved at position +5.Neither PolD3 nor Fen1 is thought to be a CRL Cdt2 substrate, suggesting that instead of being related to PCNA binding affinity, the divergence of the PolD4 PIP-PCNA binding mode from canonical to non-canonical may be related to the targeting of these proteins by CRL Cdt2 , their ubiquitylation and subsequent degradation.Further work on diverse PIP-and PIP degron-containing proteins will be required to address this.In summary, the determination of the structures of Ct PolD3, PolD4 and Fen1 PIP peptides bound to Ct PCNA allows direct comparison of binding modes, both within species (PolD3 versus PolD4 versus Fen1) but also across species, with reference to previously determined structures for human PolD3/p66, PolD4/ p12 and Fen1 PIP peptide-PCNA complexes (Bruning and Shamoo, 2004;Gonzalez-Magana et al., 2019).With increasing interest in the development of inhibitors of PCNA-PIP interactions for therapeutic purposes (Horsfall et al., 2020;Gu et al., 2023), gaining a detailed structural understanding of how these interactions occur, how they have evolved and how this impacts function, is more important than ever.

FIGURE 1
FIGURE 1 Overall structure of Pol δ and conservation of PolD3 and Fen1 PIP motif sequences.Centre: Cryo-EM structure of human Pol δ-Fen1-PCNA-DNA complex determined by De Biasio and coworkers (Lancey et al., 2020).Individual proteins are shown in different colours as follows: PolD1/p125, green; PolD2/p50, cyan; PolD3/p66 N-terminal domain, magenta; PolD4/p12 C-terminal domain, dark blue; Fen1, orange; PCNA promoters, grey, purple and salmon pink.The N-and C-terminal ends of PolD3 are labelled N and C. PCNA-PIP peptide interactions involving Fen1 and PolD1/p125 are circled.Top left: Schematic representation of Ct PolD3 and Ct Fen1 proteins, with the PolD3 N-terminal domain shown in light grey, the Fen1 nuclease domain in dark gray, and the two PIP motifs in black.Top right: Protein sequence alignment of known or predicted PIP motifs in PolD3 proteins from Chaetomium thermophilum (Ct), S. pombe (Sp), S. cerevisiae (Sp) and human (Hs).Bottom left: Protein sequence alignment of PIP motifs in Fen1 proteins from Chaetomium thermophilum (Ct), S. pombe (Sp), S. cerevisiae (Sc) and human (Hs).Key conserved residues are shown in bold red.Central image prepared using the PyMOL Molecular Graphics System version 2.0 (Schrödinger LLC, New York) and PDB file 6TNZ.

FIGURE 2
FIGURE 2 Binding of Ct PolD3 PIP peptide to Ct PCNA.(A) Crystal structure of Ct PCNA (shown in green, cyan and magenta) with a Ct PolD3 PIP peptide (yellow) binding to one of the PCNA protomers at 2.45 Å resolution (PDB: 8P9O).(B) Close-up view of the Ct PolD3 PIP peptide (residues visible: 441 QGSIMSWFAKK 451 , with conserved PIP motif residues underlined) bound to Ct PCNA.The Q-pocket on Ct PCNA (occupied by the sidechain of Gln441) is circled in yellow and the hydrophobic surface pocket (occupied by the sidechains of Ile444 and Phe448) in white.Image prepared using the PyMOL Molecular Graphics System version 2.0 (Schrödinger LLC, New York) and PDB file 8P9O.(C) Detailed view of the Ct PCNA-Ct PolD3 PIP peptide interaction represented using LigPlot + version 2.2.5 (Laskowski and Swindells, 2011) with default parameters.The Ct PolD3 peptide backbone is shown in orange, with individual peptide amino acids labelled in blue text.Hydrogen bonds (2.7-3.35Å) are shown as green broken lines, with bond distances (Å) indicated.Amino acids in Ct PCNA involved in hydrogen bonding to the Ct PolD3 PIP peptide are labelled in green text.The red spoked arcs represent residues in Ct PCNA making hydrophobic contacts (2.9-3.9Å) with the peptide; the corresponding atoms in the Ct PolD3 peptide are decorated with smaller red spokes.Carbon, oxygen, nitrogen and sulphur atoms are represented by black, red, dark blue and yellow circles, respectively, and water molecules by white circles.(D) Affinity of Ct PCNA for the Ct PolD3 peptide measured by isothermal titration calorimetry (ITC).The left-hand panel shows baseline-corrected experimental data from titration of the Ct PolD3 peptide (420 µM) with Ct PCNA (32.7 µM).The right-hand panel shows the ligand concentration dependence of heat released upon PCNA-peptide binding, with the molar ratio referring to peptide:PCNA promoter.The ITC analysis was performed twice with similar results; a single dataset is shown.See Materials and methods for details.

FIGURE 3
FIGURE 3 Binding of Ct Fen1 PIP peptide to Ct PCNA.(A) Crystal structure of Ct PCNA (shown in green, cyan and magenta) bound to the Ct Fen1 PIP peptides (red, salmon pink, blue) at 1.95 Å resolution (PDB: 8Q7I).(B) Close-up view of the Ct Fen1 PIP peptide (residues visible: 341 QQARIEGFFKVI 352 , with conserved PIP motif residues underlined) bound to Ct PCNA.The Q-pocket on Ct PCNA (occupied by the sidechain of Gln342) is circled in yellow and the hydrophobic (Continued )